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This is illustrated by the fact that φEL is capable of folding β-galactosidase, a 116-kDa protein.
The G2 also has an LCD touchscreen that is capable of folding out and twisting to whatever angle (within 180 degrees side to side and 270 degrees up and down).
Moreover, C. reinhardtii chloroplast is an attractive platform for expressing malaria antigens because it is capable of folding complex proteins, including those requiring disulfide bond formation, while lacking the ability to glycosylate proteins; a valuable quality of any malaria protein expression system, since the Plasmodium parasite lacks N-linked glycosylation machinery.
This suggests that the protein has a hydrophobic core and is capable of folding in phosphate buffer in the absence of Mg2+ or nucleotide.
The solved structure of myoferlin C2A indicates that it is capable of folding into the characteristic C2 domain beta-sandwich, although consisting of more than the typical eight strands.
Despite having very low levels of identity to other SSU rDNAs the sequence is capable of folding to form most of the secondary structure elements found in such molecules.
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Actually, the PEG blocks were capable of folding even in very low molecular weights, i.e., 5000 g/mol.
Given that graphene is thought to be the hardest material known[3], it is counterintuitive to believe that liver carcinoma cells are capable of folding and compartmentalizing graphene sheets.
Preliminary electron microscopy analysis also suggests that these cells are capable of folding and compartmentalizing sheets of smaller sizes (approximately 1.41 μm) although more work should be undertaken to validate.
Domains I and III are capable of folding into stable structural units and producing well resolved 15N/1H correlation spectra, whereas domain II forms significant aggregates at sub-millimolar concentration.
Arrays of core nucleosomes are capable of folding into compact higher-order structures, a process facilitated by other chromatin architectural proteins such as linker histones.
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